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RESEARCH ARTICLE

Responses of runoff, sedimentation, and induced nutrient loss to vegetation change in the Tengger Desert, northern China

Xiaojun Li A D E , Jinggang Zheng B , Xinrong Li A , Huijuan Tan A , Yanxia Pan A and Yongping Wei C
+ Author Affiliations
- Author Affiliations

A Shapotou Desert Research and Experiment Station, Cold and Arid Regions Environmental and Engineering Research Institute, Chinese Academy of Sciences, Lanzhou 730000, P.R. China.

B College of Urban Planning and Environmental Sciences, Xuchang University, Xuchang 461000, P.R. China.

C Australia-China Centre on Water Resources Research, The University of Melbourne, Parkville, Vic. 3010, Australia.

D Cold and Arid Regions Environmental and Engineering Research Institute, Chinese Academy of Sciences, 320 Donggang West Road, Lanzhou 730000, P.R. China.

E Corresponding author. Email: xiaojunli@lzb.ac.cn

Soil Research 51(2) 124-132 https://doi.org/10.1071/SR12234
Submitted: 23 August 2012  Accepted: 19 March 2013   Published: 22 April 2013

Abstract

Runoff and nutrient loss in drylands are closely related to vegetation cover. Simulated rainfall experiments with an intensity of 80 mm/h were conducted in sandy grassland and shrubland in the Tengger Desert, China, to investigate the responses of runoff and associated carbon (C) and nitrogen (N) losses to the replacement of grassland by shrubland. Times to ponding and to generate runoff, and the amount of rainfall for runoff commencement in bare, inter-shrub plots were significantly smaller than in shrub (ST) and grassland (GT) plots; no statistical differences were found for these parameters between ST and GT. Overall, this indicated a higher soil water infiltration rate in grassland than in shrubland. The volume-weighted concentrations of organic C (OC) and total N (TN) in runoff from shrubland (0.083 and 0.011 g/L, respectively) were lower than those from grassland (0.103 and 0.012 g/L, respectively). The cover-weighted runoff coefficients, and sediment, OC, and TN losses from shrubland (34.46%, and 44.95 1.72, and 0.23 g/m2, respectively) were greater than from grassland (15.22%, and 15.91, 0.94, and 0.11 g/m2). Vegetation degradation was accompanied by reduced nutrient retention capacity; both soil OC and TN of grassland (8.97 and 0.62 g/kg, respectively) were greater than those weighted values for shrubland (4.18 and 0.26 g/kg). Understanding of these processes suggests that decline or loss of vegetation cover, with the appearance of biological soil crust patches, inevitably leads to increases in runoff and induced soil loss, further accelerating desertification.

Additional keywords: biological soil crust, nutrient loss, runoff, Tengger Desert, vegetation degradation.


References

Abrahams AD, Parsons AJ, Wainwright J (1994) Resistance to overland flow on semi-arid grassland and shrubland hillslopes, Walnut Gulch, southern Arizona. Journal of Hydrology 156, 431–446.
Resistance to overland flow on semi-arid grassland and shrubland hillslopes, Walnut Gulch, southern Arizona.Crossref | GoogleScholarGoogle Scholar |

Abrahams AD, Parsons AJ, Wainwright J (1995) Effects of vegetation change on interrill runoff and erosion, Walnut Gulch, southern Arizona. Geomorphology 13, 37–48.
Effects of vegetation change on interrill runoff and erosion, Walnut Gulch, southern Arizona.Crossref | GoogleScholarGoogle Scholar |

Avni Y, Porat N, Plakht J, Avni G (2006) Geomorphic changes leading to natural desertification versus anthropogenic land conservation in an arid environment, the Negev Highlands, Israel. Geomorphology 82, 177–200.
Geomorphic changes leading to natural desertification versus anthropogenic land conservation in an arid environment, the Negev Highlands, Israel.Crossref | GoogleScholarGoogle Scholar |

Báez S, Collins SL (2008) Shrub invasion decreases diversity and alters community stability in northern Chihuahuan Desert plant communities. PLoS ONE 3, e2332
Shrub invasion decreases diversity and alters community stability in northern Chihuahuan Desert plant communities.Crossref | GoogleScholarGoogle Scholar | 18523686PubMed |

Barger NN, Herrick JE, Zee JV, Belnap J (2006) Impacts of biological soil crust disturbance and composition on C and N loss from water erosion. Biogeochemistry 77, 247–263.
Impacts of biological soil crust disturbance and composition on C and N loss from water erosion.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD28XhsFCksr8%3D&md5=820b23b9d62ba1d7476b134319fb3dfbCAS |

Bates JD, Svejcar T, Miller RF, Angell RA (2006) The effects of precipitation timing on sagebrush steppe vegetation. Journal of Arid Environments 64, 670–697.
The effects of precipitation timing on sagebrush steppe vegetation.Crossref | GoogleScholarGoogle Scholar |

Bhark EW, Small EE (2003) Association between plant canopies and the spatial patterns of infiltration in shrubland grassland of the Chihuahuan Desert, New Mexico. Ecosystems 6, 185–196.
Association between plant canopies and the spatial patterns of infiltration in shrubland grassland of the Chihuahuan Desert, New Mexico.Crossref | GoogleScholarGoogle Scholar |

Biedenbender SH, McClaran MP, Quade J, Weltz MA (2004) Landscape patterns of vegetation change indicated by soil carbon isotope composition. Geoderma 119, 69–83.
Landscape patterns of vegetation change indicated by soil carbon isotope composition.Crossref | GoogleScholarGoogle Scholar |

Bochet E, Rubio JL, Poesen J (1998) Relative efficiency of three representative matorral species in reducing water erosion at the microscale in a semi-arid climate (Valencia, Spain). Geomorphology 23, 139–150.
Relative efficiency of three representative matorral species in reducing water erosion at the microscale in a semi-arid climate (Valencia, Spain).Crossref | GoogleScholarGoogle Scholar |

Bochet E, Rubio JL, Poesen J (1999) Modified topsoil islands within patchy Mediterranean vegetation in SE Spain. Catena 38, 23–44.
Modified topsoil islands within patchy Mediterranean vegetation in SE Spain.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK1MXmvVKnsrY%3D&md5=3de887c6ce653bccc1f171685ac779c4CAS |

Bochet E, Poesen J, Rubio JL (2000) Mound development as an interaction of individual plants with soil, water erosion and sedimentation processes on slopes. Earth Surface Processes and Landforms 25, 847–867.
Mound development as an interaction of individual plants with soil, water erosion and sedimentation processes on slopes.Crossref | GoogleScholarGoogle Scholar |

Braud I, Vich AIJ, Zuluaga J, Fornero L, Pedrani A (2001) Vegetation influence on runoff and sediment yield in the Andes region: Observation and modeling. Journal of Hydrology 254, 124–144.
Vegetation influence on runoff and sediment yield in the Andes region: Observation and modeling.Crossref | GoogleScholarGoogle Scholar |

Castillo VM, Martinez-Mena M, Albaladejo J (1997) Runoff and soil response to vegetation removal in a semiarid environment. Soil Science Society of America Journal 61, 1116–1121.
Runoff and soil response to vegetation removal in a semiarid environment.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK2sXlt1ShsbY%3D&md5=c92b61fef29992a61b20a9920278bb60CAS |

Chamizo S, Cantón Y, Rodríguez-Caballero E, Domingo F, Escudero A (2012) Runoff at contrasting scales in a semiarid ecosystem: A complex balance between biological soil crust features and rainfall characteristics. Journal of Hydrology 452–453, 130–138.
Runoff at contrasting scales in a semiarid ecosystem: A complex balance between biological soil crust features and rainfall characteristics.Crossref | GoogleScholarGoogle Scholar |

Cross AF, Schlesinger WH (1999) Plant regulation of soil nutrient distribution in the northern Chihuahuan Desert. Plant Ecology 145, 11–25.
Plant regulation of soil nutrient distribution in the northern Chihuahuan Desert.Crossref | GoogleScholarGoogle Scholar |

Eldridge DJ, Zaady E, Shachak M (2002) Mircophytic crusts, shrub patches and water harvesting in the Negev Desert: The Shikim system. Landscape Ecology 17, 587–597.
Mircophytic crusts, shrub patches and water harvesting in the Negev Desert: The Shikim system.Crossref | GoogleScholarGoogle Scholar |

George DB, Roundy BA, St Clair LL, Johansen JR, Schaalje GB, Webb BL (2003) The effects of microbiotic soil crusts on soil water loss. Arid Land Research and Management 17, 113–125.
The effects of microbiotic soil crusts on soil water loss.Crossref | GoogleScholarGoogle Scholar |

Gimeno-García E, Andreu V, Rubío JL (2007) Influence of vegetation recovery on water erosion at short and medium-term after experimental fires in a Mediterranean shrubland. Catena 69, 150–160.
Influence of vegetation recovery on water erosion at short and medium-term after experimental fires in a Mediterranean shrubland.Crossref | GoogleScholarGoogle Scholar |

Glendening GE (1952) Some quantitative data on the increase of Mesquite and Cactus on a desert grassland range in Southern Arizona. Ecology 33, 319–328.
Some quantitative data on the increase of Mesquite and Cactus on a desert grassland range in Southern Arizona.Crossref | GoogleScholarGoogle Scholar |

Graetz D (1994) Grassland. In ‘Changes in land use and land cover: A global perspective’. (Eds WB Meyer, BL Turner) (Cambridge University Press: Cambridge, UK)

Guebert MD, Gardner TW (2001) Macropore flow on a reclaimed surface mine: Infiltration and hillslope hydrology. Geomorphology 39, 151–169.
Macropore flow on a reclaimed surface mine: Infiltration and hillslope hydrology.Crossref | GoogleScholarGoogle Scholar |

Housman DC, Powers HH, Collins AD (2006) Carbon and nitrogen fixation differ between successional stages of biological soil crusts in the Colorado Plateau and Chihuahuan Desert. Journal of Arid Environments 66, 620–634.
Carbon and nitrogen fixation differ between successional stages of biological soil crusts in the Colorado Plateau and Chihuahuan Desert.Crossref | GoogleScholarGoogle Scholar |

Howes DA, Abrahams AD (2003) Modeling runoff and runon in a desert shrubland ecosystem, Jornada Basin, New Mexico. Geomorphology 53, 45–73.
Modeling runoff and runon in a desert shrubland ecosystem, Jornada Basin, New Mexico.Crossref | GoogleScholarGoogle Scholar |

Humphrey RR (1958) The desert grassland: a history of vegetational change and an analysis of causes. Botanical Review 24, 193–252.
The desert grassland: a history of vegetational change and an analysis of causes.Crossref | GoogleScholarGoogle Scholar |

Kidron GJ (2010) Under-canopy microclimate within sand dunes in the Negev Desert. Journal of Hydrology 392, 201–210.
Under-canopy microclimate within sand dunes in the Negev Desert.Crossref | GoogleScholarGoogle Scholar |

Kidron GJ, Yair A (1997) Rainfall-runoff relationships over encrusted dune surfaces, Nizzana, western Negev, Israel. Earth Surface Processes and Landforms 22, 1169–1184.
Rainfall-runoff relationships over encrusted dune surfaces, Nizzana, western Negev, Israel.Crossref | GoogleScholarGoogle Scholar |

Kidron GJ, Yair A (2001) Runoff-induced sediment yield over dune slopes in the Negev Desert. 1: quantity and variability. Earth Surface Processes and Landforms 26, 461–474.
Runoff-induced sediment yield over dune slopes in the Negev Desert. 1: quantity and variability.Crossref | GoogleScholarGoogle Scholar |

Li XR, Jia XH (2005) Association between vegetation patterns and soil properties on the southeastern edge of the Tengger Desert. Acta Agrestia Sinica 13, 37–43 [in Chinese with English abstract].

Li XJ, Li XR, Song WM, Gao YP, Zheng JG, Jia RL (2008) Effects of crust and shrub patches on runoff, sedimentation, and related nutrient (C, N) redistribution in the desertified steppe zone of the Tengger Desert, Northern China. Geomorphology 96, 221–232.
Effects of crust and shrub patches on runoff, sedimentation, and related nutrient (C, N) redistribution in the desertified steppe zone of the Tengger Desert, Northern China.Crossref | GoogleScholarGoogle Scholar |

Ludwig JA, Wilcox BP, Breshears DD, Tongway DJ, Imeson AC (2005) Vegetation patches and runoff-erosion as interacting ecohydrological processes in semi-arid landscape. Ecology 86, 288–297.
Vegetation patches and runoff-erosion as interacting ecohydrological processes in semi-arid landscape.Crossref | GoogleScholarGoogle Scholar |

Mager DM, Thomas AD (2011) Extracellular polysaccharides from cyanobacterial soil crusts: a review of their role in dryland soil processes. Journal of Arid Environments 75, 91–97.
Extracellular polysaccharides from cyanobacterial soil crusts: a review of their role in dryland soil processes.Crossref | GoogleScholarGoogle Scholar |

Mazor G, Kidron GJ, Vonshak A, Abeliovitch A (1996) The role of cyanobacterial exopolysaccharides in structuring desert microbial crusts. FEMS Microbiology Ecology 21, 121–130.
The role of cyanobacterial exopolysaccharides in structuring desert microbial crusts.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK28XmtV2it7g%3D&md5=a7fb71a9981062603ee538bb8cc993a3CAS |

Milton SJ, Dean WRJ, du Plessis MA, Siegfried WR (1994) A conceptual model of arid rangeland degradation: The escalating cost of declining productivity. Bioscience 44, 70–76.
A conceptual model of arid rangeland degradation: The escalating cost of declining productivity.Crossref | GoogleScholarGoogle Scholar |

Moran MS, Scott RL, Keefer TO, Emmerich WE, Hernandez M, Nearing GS, Paige GB, Cosh MH, O’Neill PE (2009) Partitioning evapotranspiration in semiarid grassland and shrubland ecosystems using time series of soil surface temperature. Agricultural and Forest Meteorology 149, 59–72.
Partitioning evapotranspiration in semiarid grassland and shrubland ecosystems using time series of soil surface temperature.Crossref | GoogleScholarGoogle Scholar |

Nelson DW, Sommers LE (1982) Total carbon, organic carbon, and organic matter. In ‘Methods of soil analysis II. Chemical and micro-biological properties’. (Eds AL Page, DR Miller) (American Society of Agronomy: Madison, WI)

Polley HW, Mayeux HS, Johnson HS, Tischler CR (1997) Viewpoint: Atmospheric CO2, soil water, and shrub/grass ratios on rangelands. Journal of Range Management 50, 278–284.
Viewpoint: Atmospheric CO2, soil water, and shrub/grass ratios on rangelands.Crossref | GoogleScholarGoogle Scholar |

Qiu MX, Liu JQ, Shi QH (2000) ‘Vegetation in central desert of China.’ (Gansu Cultural Press: Lanzhou, China)

Rostagno CM, del Valle HF, Videla L (1991) The influence of shrubs on some chemical and physical properties of an aridic soil in north-eastern Patagonia, Argentina. Journal of Arid Environments 20, 179–188.

Schlesinger WH, Reynolds JF, Cunningham GL, Huenneke LF, Jarrell WM, Virginia RA, Whiteford WG (1990) Biological feedbacks in global desertification. Science 247, 1043–1048.
Biological feedbacks in global desertification.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BC3cvjs1aisg%3D%3D&md5=60a3d79f18e3db0dcee78e1fd3a654b8CAS | 17800060PubMed |

Schlesinger WH, Raikes JA, Hartley AE, Cross AF (1996) On the spatial pattern of soil nutrients in desert ecosystem. Ecology 77, 364–374.
On the spatial pattern of soil nutrients in desert ecosystem.Crossref | GoogleScholarGoogle Scholar |

Schlesinger WH, Abrahams AD, Parsons AJ, Wainwright J (1999) Nutrients losses in runoff from grassland and shrubland habitats in Southern New Mexico: I. Rainfall simulation experiments. Biogeochemistry 45, 21–34.
Nutrients losses in runoff from grassland and shrubland habitats in Southern New Mexico: I. Rainfall simulation experiments.Crossref | GoogleScholarGoogle Scholar |

Schlesinger WH, Ward TJ, Anderson J (2000) Nutrient losses in runoff from grassland and shrubland habitats in southern New Mexico: II. Field plots. Biogeochemistry 49, 69–86.
Nutrient losses in runoff from grassland and shrubland habitats in southern New Mexico: II. Field plots.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3cXis1Cktbw%3D&md5=ec23beccb595b698039dc18dd5b924abCAS |

Scott RL, Huxman TE, Williams DG, Goodrich DC (2006) Ecohydrological impacts of woody-plant encroachment: seasonal patterns of water and carbon dioxide exchange within a semiarid riparian environment. Global Change Biology 12, 311–324.
Ecohydrological impacts of woody-plant encroachment: seasonal patterns of water and carbon dioxide exchange within a semiarid riparian environment.Crossref | GoogleScholarGoogle Scholar |

Shapotou Desert Research Station (1980) ‘Lanzhou Institute of Desert Research, Chinese Academy of Sciences: Sand stabilization principle and measures in the Shapotou section of Baotou–Lanzhou Railway.’ (Ningxia People’s Publishing House: Yingchuan, China)

Soil Survey Staff (2010) ‘Keys to Soil Taxonomy.’ 11th edn (USDA-Natural Resources Conservation Service: Washington, DC)

Su YG, Zhao X, Li AX, Li XR, Huang G (2011) Nitrogen fixation in biological soil crusts from the Tengger Desert, northern China. European Journal of Soil Biology 47, 182–187.
Nitrogen fixation in biological soil crusts from the Tengger Desert, northern China.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3MXmtl2rsbo%3D&md5=a0bcd2a3a7bc9126cf0b2f62691856d4CAS |

Tongway DJ, Ludwig JA (1994) Small scale resource heterogeneity in semiarid landscapes. Pacific Conservation Biology 1, 201–208.

Wilcox BP, Breshears DD, Allen CD (2003) Ecohydrology of a resource-conserving semi-arid woodland: Effects of scale and disturbance. Ecological Monographs 73, 223–239.
Ecohydrology of a resource-conserving semi-arid woodland: Effects of scale and disturbance.Crossref | GoogleScholarGoogle Scholar |

Yair A (1990) Runoff generation in a sandy area-the Nizzana sands, Western Negev, Israel. Earth Surface Processes and Landforms 15, 597–609.
Runoff generation in a sandy area-the Nizzana sands, Western Negev, Israel.Crossref | GoogleScholarGoogle Scholar |